Collateral ligament length change patterns after joint line elevation may not explain midflexion instability following TKA

被引:22
作者
Koenig, Christian
Matziolis, Georg
Sharenkov, Alexey
Taylor, William R.
Perka, Carsten
Duda, Georg N.
Heller, Markus O. [1 ]
机构
[1] Charite, Ctr Sports Sci & Sports Med Berlin, Julius Wolff Inst, D-10115 Berlin, Germany
关键词
Knee; TKA; Joint line; Stability; Collateral ligaments; Midflexion instability; TOTAL KNEE ARTHROPLASTY; STRAIN; KINEMATICS; ELONGATION; REVISION; FLEXION; WALKING; SINGLE; TENDON; LOADS;
D O I
10.1016/j.medengphy.2011.06.008
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Midflexion instability (MFI) after TKA is a phenomenon often described as varus valgus instability between 30 degrees and 45 degrees knee flexion. The exact mechanisms causing MFI remain unclear, but elevation of the joint line (JLE) may be one possible cause. In an in silico approach using 4 subject specific musculoskeletal models, the length change patterns of the collateral ligaments during knee flexion (relative to the extended knee) were calculated for the anatomically reconstructed joints as well as for JLEs of 5 and 10 mm. Analysis of the distance between the ligaments' attachment sites (DA) in midflexion revealed a relative decrease in DA magnitude after JLE for both collateral ligaments in comparison to the anatomically reconstructed knee. This finding suggests that JLE could contribute to MFI. However, the anterior ligament regions also experienced a DA increase (MCL) or only a slight DA decrease (LCL) for each JLE simulated. From this perspective, the anterior ligament portions are unlikely to slacken in midflexion and JLE is unlikely to contribute greatly to MFI. In conclusion, our findings did not support the idea that JLE is a major contributor to midflexion instability for this particular ultra-congruent implant design. (C) 2011 IPEM. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:1303 / 1308
页数:6
相关论文
共 44 条
[1]   Biomechanics of the PCL and related structures: posterolateral, posteromedial and meniscofemoral ligaments [J].
Amis, AA ;
Bull, AMJ ;
Gupte, CM ;
Hijazi, I ;
Race, A ;
Robinson, JR .
KNEE SURGERY SPORTS TRAUMATOLOGY ARTHROSCOPY, 2003, 11 (05) :271-281
[2]  
Amis AA., 1995, The Knee, V2, P5, DOI DOI 10.1016/0968-0160(95)00003-8
[3]   STRAIN-MEASUREMENT IN THE MEDIAL COLLATERAL LIGAMENT OF THE HUMAN KNEE - AN AUTOPSY STUDY [J].
ARMS, S ;
BOYLE, J ;
JOHNSON, R ;
POPE, M .
JOURNAL OF BIOMECHANICS, 1983, 16 (07) :491-496
[4]   COMPARISON OF MATERIAL PROPERTIES IN FASCICLE-BONE UNITS FROM HUMAN PATELLAR TENDON AND KNEE LIGAMENTS [J].
BUTLER, DL ;
KAY, MD ;
STOUFFER, DC .
JOURNAL OF BIOMECHANICS, 1986, 19 (06) :425-432
[5]  
Churchill DL, 1998, CLIN ORTHOP RELAT R, P111
[6]   A multicenter analysis of axial femorotibial rotation after total knee arthroplasty [J].
Dennis, DA ;
Komistek, RD ;
Mahfouz, MR ;
Walker, SA ;
Tucker, A .
CLINICAL ORTHOPAEDICS AND RELATED RESEARCH, 2004, (428) :180-189
[7]   Multicenter determination of in vivo kinematics after total knee arthroplasty [J].
Dennis, DA ;
Komistek, RD ;
Mahfouz, MR ;
Haas, BD ;
Stiehl, JB .
CLINICAL ORTHOPAEDICS AND RELATED RESEARCH, 2003, (416) :37-57
[8]  
DORR LD, 1986, CLIN ORTHOP RELAT R, P5
[9]   Variability of femoral muscle attachments [J].
Duda, GN ;
Brand, D ;
Freitag, S ;
Lierse, W ;
Schneider, E .
JOURNAL OF BIOMECHANICS, 1996, 29 (09) :1185-1190
[10]  
FIRESTONE TP, 2001, J BONE JOINT SUR S4, V88, P80